AERODYNAMIC CHARACTERISTICS OF FLUID FLOW ON MULTIPLE-ELEMENT WING AIRFOIL NACA 43018 WITH LEADING-EDGE SLAT AND PLAIN FLAP

被引:0
|
作者
Hariyadi, S. P. Setyo [1 ]
Junipitoyo, Bambang [1 ]
Pambudiyatno, Nyaris [2 ]
Sutardi, Wawan aries [3 ]
Widodo, Wawan Aries [3 ]
机构
[1] Politekn Penerbangan Surabaya, Aircraft Maintenance Engn Dept, Jemur Andayani 1-73, Surabaya 60236, Indonesia
[2] Politekn Penerbangan Surabaya, Air Nav Engn Dept, Jemur Andayani 1-73, Surabaya 60236, Indonesia
[3] Inst Teknol Sepuluh Nopember, Fac Ind Technol & Syst Engn, Mech Engn Dept, Jl Arief Rahman Hakim, Surabaya 60111, Indonesia
关键词
Aerodynamic performance; Flap deflection; High lift devices; Leading-edge slat; NACA; 43018;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
At this time, commercial aircraft always use high lift devices. The equipment can be in the form of flaps, leading-edge slats (slat slots), vortex generators, fences, and others. One type of aircraft can use one or more of this equipment so that the resulting lift coefficient can be optimal. The variation of the flap and leading-edge slat is one of the interesting things to observe in terms of phenomena around the wing and the area behind the trailing edge. The addition of flaps and leading-edge slats will certainly change the aerodynamic performance of the wings compared to plain wings so that the most optimum variation can be determined. Numerical simulation of the wing with the NACA 43018 airfoil in this research using Ansys 19.1. with the turbulent model k-epsilon Realizable. The free stream flow rate used is 120 m/s with over a wide range of angles of attack. The variations used are plain wing, flap deflection 0 degrees, 15 degrees, and 30 degrees with a leading-edge slats gap size of 5% to the chord line. Lift coefficient, drag coefficient, and lift-to-drag ratio produced with the addition of flaps and leading-edge slats showed significant differences compared to the plain wing. These variations can be used for certain conditions such as take-off, cruising, and landing. The vorticity magnitude and vortex produced by the addition of flaps and leading-edge slats showed a significant increase compared to plain wings. This shows that the drag and induced drag resulting from the addition of flaps and leading-edge slats also increase.
引用
收藏
页码:36 / 50
页数:15
相关论文
共 42 条
  • [31] Experimental Study of Far-Field Radiated Noise Characteristics for the Leading-Edge Slat of a 30P30N Airfoil
    Geng, Xin
    Liu, Peiqing
    Guo, Hao
    Hu, Tianxiang
    Li, Ling
    Liu, Yuan
    JOURNAL OF AEROSPACE ENGINEERING, 2023, 36 (06)
  • [32] Effect of Trough Incidence Angle on the Aerodynamic Characteristics of a Biomimetic Leading-Edge Protuberanced (LEP) Wing at Various Turbulence Intensities
    Arunvinthan, Shanmugam
    Gouri, Ponnusamy
    Divysha, Saravanan
    Devadharshini, Rk
    Nithya Sree, Rajan
    BIOMIMETICS, 2024, 9 (06)
  • [33] Aerodynamic characteristics and surface flow structures of moderate aspect-ratio leading-edge tubercled wings
    Wei, Zhaoyu
    Toh, J. W. A.
    Ibrahim, I. H.
    Zhang, Yanni
    EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2019, 75 : 143 - 152
  • [34] INVESTIGATION OF FLOW OVER NACA0021 AIRFOIL WITH LEADING-EDGE TUBERCLES USING TRANSITION-BASED HYBRID RANS/LES MODEL
    Mishra, Alok
    De, Ashoke
    JOURNAL OF FLOW VISUALIZATION AND IMAGE PROCESSING, 2023, 30 (01) : 1 - 36
  • [35] Characteristics of a separated flow past a semicircular leading-edge airfoil model under different imposed pressure gradient
    Anand, K.
    Ganesh, K. T.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2022, 236 (04) : 722 - 738
  • [36] Controlling secondary-flow structure by leading-edge airfoil fillet and inlet swirl to reduce aerodynamic loss and surface heat transfer
    Shih, TIP
    Lin, YL
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2003, 125 (01): : 48 - 56
  • [37] UNSTEADY AERODYNAMIC CHARACTERISTICS OF A BLADE IN PITCHING OSCILLATION WITH FLOW SEPARATION .2. THE CASE WITH LEADING-EDGE STALL
    FUJIMOTO, I
    TANAKA, H
    ISHII, S
    YAMAGUCHI, K
    BULLETIN OF THE JSME-JAPAN SOCIETY OF MECHANICAL ENGINEERS, 1985, 28 (242): : 1618 - 1625
  • [38] Causal Effect of Leading-Edge Sawtooth Configuration on Flow Field Characteristics and Aerodynamic Losses in the Supersonic Compressor Cascade
    Hu, S. J.
    Wei, Z. J.
    Ni, M.
    Ren, G. M.
    JOURNAL OF APPLIED FLUID MECHANICS, 2024, 17 (12) : 2791 - 2806
  • [39] Numerical Study of the Effect of the Trailing-Edge Devices (Gurney Flap and Divergent Trailing-Edge Flap) on the Aerodynamic Characteristics of an Airfoil in Transonic Flow for Drone Applications
    Kmiotek, Malgorzata
    Kordos, Adrian
    Piszczatowski, Adam
    Zaremba, Adam
    ADVANCES IN SCIENCE AND TECHNOLOGY-RESEARCH JOURNAL, 2023, 17 (05) : 248 - 259
  • [40] AVF-183 diamond wing flow field characteristics Part 1: Varying leading-edge roughness and the effects on flow separation onset
    Hoevelmann, Andreas
    Knoth, Florian
    Breitsamter, Christian
    AEROSPACE SCIENCE AND TECHNOLOGY, 2016, 57 : 18 - 30